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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Impact of Silane Monolayers on the Adsorption of Streptavidin on Silica and Its Subsequent Interactions with Biotin: Molecular Dynamics and Steered Molecular Dynamics Simulations
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Impact of Silane Monolayers on the Adsorption of Streptavidin on Silica and Its Subsequent Interactions with Biotin: Molecular Dynamics and Steered Molecular Dynamics Simulations

机译:硅烷单层对二氧化硅吸附及其随后与生物素相互作用的影响:分子动力学和转向分子动力学模拟

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摘要

Protein adsorption on surfaces is used in analytical tools as an immobilization mean to trap the analyte to be detected. However, protein adsorption can lead to a conformational change in the protein structure, resulting in a loss of bioactivity. Here, we study adsorption of a streptavidin-biotin complex on amorphous SiO2 surfaces functionalized with five different silane self-assembled monolayers by all-atom molecular dynamics simulations. We find that the streptavidin global conformational change, as well as the nature of residues with high mobility, depends on the alkyl chain length and head-group charge of silane molecules. Effects on interactions with biotin are further investigated by steered molecular dynamics (SMD) simulations, which mimics atomic force microscopy (AFM) with the biotin attached on the tip. We show the combined effects of adsorption-induced global conformational changes and of the position of residues with high mobility on the streptavidin-biotin rupture force. By comparing our results to experimental and SMD rupture forces obtained in water, without any surface, we conclude that silane with uncharged and short alkyl chains allows streptavidin immobilization, while keeping biotin interactions better than silanes with long alkyl chains or charged head groups.
机译:蛋白质在表面上吸附在分析工具中,因为固定意味着捕获要检测的分析物。然而,蛋白质吸附可以导致蛋白质结构的构象变化,导致生物活性丧失。在此,我们研究通过全原子分子动力学模拟用五种不同硅烷自组装单层官能化的无晶硅蛋白-1生物素复合物的吸附。我们发现Streptavidin全球化构象变化以及具有高迁移率的残留物的性质取决于烷基链长度和硅烷分子的头部电荷。通过转向的分子动力学(SMD)模拟进一步研究了对生物素相互作用的影响,其模拟原子力显微镜(AFM)与尖端上附着的生物素模拟原子力显微镜(AFM)。我们展示了吸附诱导的全局构象变化和残留物与高迁移率对链霉抗生物素 - 生物素破裂力的综合效果的综合作用。通过将我们的结果与在水中获得的实验性和SMD破裂力进行比较,我们得出结论,具有不带电和短烷基链的硅烷允许链霉抗生物素蛋白固定化,同时将生物素相互作用保持优于长烷基链或带电头基团的硅烷。

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